Files
astro/basic/venus.go
T
b612 16c62a97d5 feat: 完善时标与天象几何计算并扩展输出接口
- 新增时标、ΔT 模型、质心时间与 UT1 支持
- 改进日月食、月掩、行星事件及路径边界计算
- 完善恒星三维自行与动态距离传播
- 扩展 SVG、GeoJSON、KML 输出与底层距离换算工具
- 整理中英文手册、示例资源及回归测试
2026-09-23 18:55:12 +08:00

199 lines
5.7 KiB
Go

package basic
import (
"math"
"b612.me/astro/planet"
. "b612.me/astro/tools"
)
func VenusL(jde float64) float64 {
return planet.WherePlanet(2, 0, jde)
}
func VenusB(jde float64) float64 {
return planet.WherePlanet(2, 1, jde)
}
func VenusR(jde float64) float64 {
return planet.WherePlanet(2, 2, jde)
}
func AVenusX(jde float64) float64 {
l := VenusL(jde)
b := VenusB(jde)
r := VenusR(jde)
el := planet.WherePlanet(-1, 0, jde)
eb := planet.WherePlanet(-1, 1, jde)
er := planet.WherePlanet(-1, 2, jde)
x := r*Cos(b)*Cos(l) - er*Cos(eb)*Cos(el)
return x
}
func AVenusY(jde float64) float64 {
l := VenusL(jde)
b := VenusB(jde)
r := VenusR(jde)
el := planet.WherePlanet(-1, 0, jde)
eb := planet.WherePlanet(-1, 1, jde)
er := planet.WherePlanet(-1, 2, jde)
y := r*Cos(b)*Sin(l) - er*Cos(eb)*Sin(el)
return y
}
func AVenusZ(jde float64) float64 {
//l := VenusL(jde)
b := VenusB(jde)
r := VenusR(jde)
// el := planet.WherePlanet(-1, 0, jde)
eb := planet.WherePlanet(-1, 1, jde)
er := planet.WherePlanet(-1, 2, jde)
z := r*Sin(b) - er*Sin(eb)
return z
}
func AVenusXYZ(jde float64) (float64, float64, float64) {
l := VenusL(jde)
b := VenusB(jde)
r := VenusR(jde)
el := planet.WherePlanet(-1, 0, jde)
eb := planet.WherePlanet(-1, 1, jde)
er := planet.WherePlanet(-1, 2, jde)
x := r*Cos(b)*Cos(l) - er*Cos(eb)*Cos(el)
y := r*Cos(b)*Sin(l) - er*Cos(eb)*Sin(el)
z := r*Sin(b) - er*Sin(eb)
return x, y, z
}
func VenusApparentRa(jde float64) float64 {
lo, bo := VenusApparentLoBo(jde)
eps := TrueObliquity(jde)
ra := math.Atan2((Sin(lo)*Cos(eps) - Tan(bo)*Sin(eps)), Cos(lo))
ra = ra * 180 / math.Pi
return Limit360(ra)
}
func VenusApparentDec(jde float64) float64 {
lo, bo := VenusApparentLoBo(jde)
eps := TrueObliquity(jde)
dec := ArcSin(Sin(bo)*Cos(eps) + Cos(bo)*Sin(eps)*Sin(lo))
return dec
}
func VenusApparentRaDec(jde float64) (float64, float64) {
lo, bo := VenusApparentLoBo(jde)
eps := TrueObliquity(jde)
ra := math.Atan2((Sin(lo)*Cos(eps) - Tan(bo)*Sin(eps)), Cos(lo))
ra = ra * 180 / math.Pi
dec := ArcSin(Sin(bo)*Cos(eps) + Cos(bo)*Sin(eps)*Sin(lo))
return Limit360(ra), dec
}
func EarthVenusAway(jd float64) float64 {
return planetEarthAwayExplicitN(2, jd, -1)
}
func VenusApparentLo(jd float64) float64 {
geo, _ := planetApparentGeocentricPositionN(2, jd, -1)
return geo.lo
}
func VenusApparentBo(jd float64) float64 {
geo, _ := planetApparentGeocentricPositionN(2, jd, -1)
return geo.bo
}
func VenusApparentLoBo(jd float64) (float64, float64) {
geo, _ := planetApparentGeocentricPositionN(2, jd, -1)
return geo.lo, geo.bo
}
func VenusMag(jde float64) float64 {
sunDistance := VenusR(jde)
earthDistance := EarthVenusAway(jde)
earthSunDistance := planet.WherePlanet(-1, 2, jde)
i := (sunDistance*sunDistance + earthDistance*earthDistance - earthSunDistance*earthSunDistance) / (2 * sunDistance * earthDistance)
i = ArcCos(i)
mag := -4.40 + 5*math.Log10(sunDistance*earthDistance) + 0.0009*i + 0.000239*i*i - 0.00000065*i*i*i
return FloatRound(mag, 2)
}
func VenusHeight(localJD, lon, lat, timezone float64) float64 {
// 转换为世界时
utcJD := localJD - timezone/24.0
// 计算视恒星时
ra, dec := VenusApparentRaDec(UTC2TT(utcJD))
st := Limit360(ApparentSiderealTime(UTC2UT1(utcJD))*15 + lon)
// 计算时角
hourAngle := Limit360(st - ra)
// 高度角、时角与天球座标三角转换公式
// sin(h)=sin(lat)*sin(dec)+cos(dec)*cos(lat)*cos(hourAngle)
sinHeight := Sin(lat)*Sin(dec) + Cos(dec)*Cos(lat)*Cos(hourAngle)
return ArcSin(sinHeight)
}
func VenusAzimuth(localJD, lon, lat, timezone float64) float64 {
// 转换为世界时
utcJD := localJD - timezone/24.0
// 计算视恒星时
ra, dec := VenusApparentRaDec(UTC2TT(utcJD))
st := Limit360(ApparentSiderealTime(UTC2UT1(utcJD))*15 + lon)
// 计算时角
hourAngle := Limit360(st - ra)
// 三角转换公式
tanAzimuth := Sin(hourAngle) / (Cos(hourAngle)*Sin(lat) - Tan(dec)*Cos(lat))
azimuth := ArcTan(tanAzimuth)
if azimuth < 0 {
if hourAngle/15 < 12 {
return azimuth + 360
}
return azimuth + 180
}
if hourAngle/15 < 12 {
return azimuth + 180
}
return azimuth
}
func VenusHourAngle(jd, lon, tz float64) float64 {
startime := Limit360(ApparentSiderealTime(UTC2UT1(jd-tz/24))*15 + lon)
timeangle := startime - VenusApparentRa(UTC2TT(jd-tz/24.0))
if timeangle < 0 {
timeangle += 360
}
return timeangle
}
func VenusCulminationTime(localJD, lon, timezone float64) float64 {
// localJD 是本地民用日锚点(当地 0 时),不是力学时。
//ra,dec 瞬时天球座标,非J2000等时间天球坐标
localJD = math.Floor(localJD) + 0.5
estimateJD := localJD + Limit360(360-VenusHourAngle(localJD, lon, timezone))/15.0/24.0*0.99726851851851851851
limitHA := func(localJD, lon, timezone float64) float64 {
ha := VenusHourAngle(localJD, lon, timezone)
if ha < 180 {
ha += 360
}
return ha
}
var ok bool
estimateJD, ok = eventNewtonRefine(estimateJD, 0.00001, func(prevJD float64) float64 {
stDegree := limitHA(prevJD, lon, timezone) - 360
stDegreep := (limitHA(prevJD+0.000005, lon, timezone) - limitHA(prevJD-0.000005, lon, timezone)) / 0.00001
return stDegree / stDegreep
})
if !ok {
return math.NaN()
}
return estimateJD
}
func VenusRiseTime(jd, lon, lat, tz, aeroCorrection, observerHeight float64) (float64, error) {
return venusRiseDown(jd, lon, lat, tz, aeroCorrection, observerHeight, true)
}
func VenusSetTime(jd, lon, lat, tz, aeroCorrection, observerHeight float64) (float64, error) {
return venusRiseDown(jd, lon, lat, tz, aeroCorrection, observerHeight, false)
}
func venusRiseDown(jd, lon, lat, tz, aeroCorrection, observerHeight float64, isRise bool) (float64, error) {
return planetRiseDown(jd, lon, lat, tz, aeroCorrection, observerHeight, isRise, VenusCulminationTime, VenusHeight, VenusApparentDec)
}